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ELECTROMYOGRAPHY AS A TOOL TO ESTIMATE MUSCLE FORCES  305

                          Edman, K. A. (1978), Maximum velocity of shortening in relation to sarcomere length and degree of activation
                            of frog muscle fibres [proceedings]. J Physiol, 278:9P–10P.
                          Edman, K. A. (1979), The velocity of unloaded shortening and its relation to sarcomere length and isometric
                            force in vertebrate muscle fibres. J Physiol, 291:143–159.
                          Enoka, R. M. (2002). Neuromechanics of Human Movement. Champaign, IL, Human Kinetics.
                          Epstein, M., and W. Herzog (1998), Theoretical Models of Skeletal Muscle. New York, Wiley.
                          Feinstein, B., B. Lindegard, et al. (1955), Morphologic studies of motor units in normal human muscles. Acta
                            Anat (Basel), 23(2):127–142.
                          Fitts, R. H., and J. M. Metzger. (1993), Mechanisms of muscular fatigue.  In Medicine and Sport Science;
                            Principle of Exercise Biochemistry. New York, Karger, 27:248–268.
                          Goffe, W. L., G. D. Ferrier, et al. (1994), Global optimization of statistical functions with simulated annealing.
                            J Econometr, 60(1–2):65–99.
                          Gordon, A. M., A. F. Huxley, et al. (1966), The variation in isometric tension with sarcomere length in vertebrate
                            muscle fibres. J Physiol, 184(1):170–192.
                          Guimaraes, A. C., W. Herzog, et al. (1994), Effects of muscle length on the EMG-force relationship of the cat
                            soleus muscle studied using non-periodic stimulation of ventral root filaments. J Exp Biol, 193:49–64.
                          Hagemann, B., G. Luhede, et al. (1985), Improved active electrodes for recording bioelectric signals in work
                            physiology. Eur J Appl Physiol Occup Physiol, 54(1):95–98.
                          Heckathorne, C. W., and D. S. Childress (1981), Relationships of the surface electromyogram to the force, length,
                            velocity, and contraction rate of the cineplastic human biceps. Am J Phys Med, 60(1):1–19.
                          Herzog, W., and T. R. Leonard (1991), Validation of optimization models that estimate the forces exerted by
                            synergistic muscles. J Biomech, 24:31–39.
                          Higginson, J. S., R. R. Neptune, et al. (2005), Simulated parallel annealing within a neighborhood for optimization
                            of biomechanical systems. J Biomech, 38(9):1938–1942.
                          Hill, A. V. (1938), The heat of shortening and the dynamic constants of muscle. Proceedings of the Royal Society
                            of London Series B-Biological Sciences, 126(843):136–195.
                          Hof, A. L., and J. Van den Berg (1981), EMG to force processing II: estimation of parameters of the Hill muscle
                            model for the human triceps surae by means of a calfergometer. J Biomech, 14(11):759–770.
                          Huijing, P. A. (1996), Important experimental factors for skeletal muscle modelling: non-linear changes of
                            muscle length force characteristics as a function of degree of activity. Eur J Morphol, 34(1):47–54.
                          Hull, M. L., and D. Hawkins (1990), Analysis of muscular work in multisegmental movements: application to
                            cycling. In: Multiple Muscle Systems: Biomechanics and Movement Organization. Winters, J. M., and
                            S. L.-Y. Woo (eds.). New York, Springer, pp. 621–638.
                          Li, G., K. R. Kaufman, et al. (1999), Prediction of antagonistic muscle forces using inverse dynamic optimization
                            during flexion extension of the knee. J Biomech Eng-Trans Asme, 121(3):316–322.
                          Lippold, O. C. (1952), The relation between integrated action potentials in a human muscle and its isometric tension.
                            J Physiol, 117(4):492–499.
                          Lloyd, D. G., and T. F. Besier (2003), An EMG-driven musculoskeletal model to estimate muscle forces and knee
                            joint moments in vivo. J Biomech, 36(6):765–776.
                          Lloyd, D. G., and T. S. Buchanan (1996), A model of load sharing between muscles and soft tissues at the human
                            knee during static tasks. J Biomech Eng, 118(3):367–376.
                          Loeb, G. E., and C. Gans (1986),  Electromyography for Experimentalists. Chicago, University of Chicago
                            Press.
                          Manal, K., R. V. Gonzalez, et al. (2002), A real-time EMG-driven virtual arm. Comput Biol Med, 32(1):25–36.
                          Manal K., and T. S. Buchanan. (2003). A one-parameter neural activation to muscle activation model: estimating
                            isometric joint moments from electromyograms. J Biomech, 36(8):1197–1202.
                          Milner-Brown, H. S., R. B. Stein, et al. (1973), Changes in firing rate of human motor units during linearly
                            changing voluntary contractions. J Physiol, 230(2):371–390.
                          Moritani, T., and H. A. deVries (1978), Reexamination of the relationship between the surface integrated
                            electromyogram (IEMG) and force of isometric contraction. Am J Phys Med, 57(6):263–277.
                          Neptune, R. R., S. A. Kautz, et al. (2001), Contributions of the individual ankle plantar flexors to support,
                            forward progression and swing initiation during walking. J Biomech, 34(11):1387–1398.
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